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Many-body localized molecular orbital approach to molecular transport

机译:分子运输的多体局部分子轨道方法

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An ab initio based theoretical approach to describe nonequilibrium many-body effects in molecular transport is developed. We introduce a basis of localized molecular orbitals and formulate the many-body model in this basis. In particular, the Hubbard-Anderson Hamiltonian is derived for single-molecule junctions with intermediate coupling to the leads. As an example we consider a benzenedithiol junction with gold electrodes. An effective few-level model is obtained from which spectral and transport properties are computed and are analyzed. Electron-electron interaction crucially affects transport and induces multiscale Coulomb blockade at low biases. At large bias, transport through asymmetrically coupled molecular edge states results in the occurrence of "anomalous" conductance features, i.e., of peaks with unexpectedly large/small height or even not located at the expected resonance energies.
机译:建立了一种从头开始的理论方法来描述分子运输中的非平衡多体效应。我们介绍了局部分子轨道的基础,并在此基础上建立了多体模型。尤其是,哈伯德-安德森哈密顿量是针对单分子结导出的,中间耦合到引线。作为示例,我们考虑与金电极的苯二硫醇连接。获得有效的几级模型,从中可以计算和分析光谱和传输特性。电子-电子相互作用至关重要地影响运输,并在低偏压下引起多尺度库仑阻塞。在大的偏压下,通过不对称偶联的分子边缘态的传输导致“异常”电导特征的出现,即具有意想不到的大/小高度或者甚至不在预期的共振能量处的峰的出现。

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